• DocumentCode
    1137216
  • Title

    Behavioral Model of a Self-Mixing Laser Diode Sensor

  • Author

    Plantier, Guy ; Bes, Caroline ; Bosch, Thierry

  • Author_Institution
    Ecole Superieure d´´Electronique de l´´Ouest, Angers, France
  • Volume
    41
  • Issue
    9
  • fYear
    2005
  • Firstpage
    1157
  • Lastpage
    1167
  • Abstract
    The spectral properties of a laser diode are modified when the optical beam is back-scattered into the active cavity of the laser. Based on the use of this optical feedback, the self-mixing effect has been demonstrated to be suitable for sensing applications. This is an emerging technique enabling notably displacement, distance and/or velocity measurements to be performed. However, the self-mixing signal shape is strongly modified by the strength of the back-scattering and by nonlinear phenomena governing the global behavior of the laser diode. This makes signal processing rather challenging. In this paper, a new high-level model is proposed to represent the self-mixing phenomenon and to simplify the solution of nonlinear equations involved in this problem. This model is represented by schematic block diagrams commonly used for the description of complex systems in the domains of nonlinear mechanics, telecommunications, sensors, actuators, etc. This approach will allow the use of powerful and standard simulation tools such as Spice, VHDL-AMS or MATLAB/Simulink to develop new methods for signal processing of optical feedback interferometers, notably in the case of displacements measurements.
  • Keywords
    backscatter; displacement measurement; laser cavity resonators; light interferometry; measurement by laser beam; nonlinear equations; optical feedback; optical sensors; semiconductor device models; semiconductor lasers; velocity measurement; active laser cavity; backscatter; behavioral model; displacement measurement; distance measurement; high-level model; laser diode sensor; nonlinear equations; nonlinear phenomena; optical beam; optical feedback; optical feedback interferometers; self-mixing effect; self-mixing sensor; self-signal signal shape; signal processing; spectral properties; velocity measurement; Diode lasers; Laser feedback; Laser modes; Mathematical model; Optical beams; Optical feedback; Performance evaluation; Shape; Signal processing; Velocity measurement; Displacement measurement; optical feedback interferometry; self-mixing effect; semiconductor laser;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2005.853364
  • Filename
    1495630